Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a python dictionary setup like so

mydict = { 'a1': ['g',6],
           'a2': ['e',2],
           'a3': ['h',3],
           'a4': ['s',2],
           'a5': ['j',9],
           'a6': ['y',7] }

I need to write a function which returns the ordered keys in a list, depending on which column your sorting on so for example if we're sorting on mydict[key][1] (ascending)

I should receive a list back like so

['a2', 'a4', 'a3', 'a1', 'a6', 'a5']

It mostly works, apart from when you have columns of the same value for multiple keys, eg. 'a2': ['e',2] and 'a4': ['s',2]. In this instance it returns the list like so

['a4', 'a4', 'a3', 'a1', 'a6', 'a5']

Here's the function I've defined

def itlist(table_dict,column_nb,order="A"):
    try:
        keys = table_dict.keys()
        values = [i[column_nb-1] for i in table_dict.values()]
        combo = zip(values,keys)
        valkeys = dict(combo)
        sortedCols = sorted(values) if order=="A" else sorted(values,reverse=True)
        sortedKeys = [valkeys[i] for i in sortedCols]
    except (KeyError, IndexError), e:
        pass
    return sortedKeys

And if I want to sort on the numbers column for example it is called like so

sortedkeysasc = itmethods.itlist(table,2)

So any suggestions?

Paul

share|improve this question
    
you just need to use the key kwarg of the sort function –  ulidtko Jan 14 '11 at 10:40

5 Answers 5

up vote 8 down vote accepted
>>> L = sorted(d.items(), key=lambda (k, v): v[1])
>>> L
[('a2', ['e', 2]), ('a4', ['s', 2]), ('a3', ['h', 3]), ('a1', ['g', 6]), ('a6', ['y', 7]), ('a5', ['j', 9])]

>>> map(lambda (k,v): k, L)
['a2', 'a4', 'a3', 'a1', 'a6', 'a5']

Here you sort the dictionary items (key-value pairs) using a key - callable which establishes a total order on the items.

Then, you just filter out needed values using a map with a lambda which just selects the key. So you get the needed list of keys.


EDIT: see this answer for a much better solution.

share|improve this answer
3  
I'm somewhat partial to [k for (k,v) in sorted(...)] as well. –  Yann Vernier Jan 14 '11 at 10:40
    
Blimey very nice thankyou! Much less code than my solution too! –  Paul Statham Jan 14 '11 at 10:42

Wouldn't it be much easier to use

sorted(d.iterkeys(), key=lambda k: d[k][1])

(with d being the dictionary)?

share|improve this answer
    
Sleek, +1. And this returns a list as desired. –  user225312 Jan 14 '11 at 11:42
    
Yeah, and the iterator's laziness is particularly an advantage too. This solution is better than mine, pity that I can't upvote twice %) –  ulidtko Jan 14 '11 at 21:57
    
@ulidtko: The lazines isn't particularly relevant, since sorted() will generate the whole list before sorting anyway. It would be equivalent to use a = d.keys(); a.sort(key=lambda k: d[k][1]) here, but sorted(d.keys(), ...) would create a redundant copy of the list. –  Sven Marnach Jan 15 '11 at 1:08
    
This is neat. Is it possible to do the reverse i.e. sort dictionary values based on keys & return list of value only in 1 line. Basically avoid list comprehension in this [v for (k,v) in sorted(d.iteritems(), key=lambda (k, v) : v ) ] –  buffer May 20 at 17:26
    
@buffer: You can't do the very same thing since you can't look up the key given the value. Your approach is fine in my opinion (possibly with key=operator.itemgetter(1) instead). Alternatives would be map(d.get, sorted(d)) or the rather non-obvious itemgetter(*sorted(d))(d). –  Sven Marnach May 20 at 17:47

Although there are multiple working answers above, a slight variation / combination of them is the most pythonic to me:

[k for (k,v) in sorted(mydict.items(), key=lambda (k, v): v[1])]
share|improve this answer
def itlist(table_dict, col, desc=False):
    return [key for (key,val) in
        sorted(
            table_dict.iteritems(),
            key=lambda x:x[1][col-1],
            reverese=desc,
            )
        ]
share|improve this answer
>>> mydict = { 'a1': ['g',6],
...            'a2': ['e',2],
...            'a3': ['h',3],
...            'a4': ['s',2],
...            'a5': ['j',9],
...            'a6': ['y',7] }
>>> sorted(mydict, key=lambda k:mydict[k][1])
['a2', 'a4', 'a3', 'a1', 'a6', 'a5']
>>> sorted(mydict, key=lambda k:mydict[k][0])
['a2', 'a1', 'a3', 'a5', 'a4', 'a6']
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.